Hybrid Cosmological Simulations with Stream Velocities
arXiv:1305.3276 · doi:10.1088/0004-637X/771/2/81
Abstract
In the early universe, substantial relative "stream" velocities between the gas and dark matter arise due to radiation pressure and persist after recombination. To asses the impact of these velocities on high-redshift structure formation, we carry out a suite of high-resolution Adaptive Mesh Refinement (AMR) cosmological simulations, which use Smoothed Particle Hydrodynamic datasets as initial conditions, converted using a new tool developed for this work. These simulations resolve structures with masses as small as a few 100 M, and we focus on the M "mini-halos" in which the first stars formed. At the presence of stream velocities has only a minor effect on the number density of halos below M, but it greatly suppresses gas accretion onto all halos and the dark matter structures around them. Stream velocities lead to significantly lower halo gas fractions, especially for M objects, an effect that is likely to depend on the orientation of a halo's accretion lanes. This reduction in gas density leads to colder, more compact radial profiles, and it substantially delays the redshift of collapse of the largest halos, leading to delayed star formation and possibly delayed reionization. These many differences suggest that future simulations of early cosmological structure formation should include stream velocities to properly predict gas evolution, star-formation, and the epoch of reionization.
14 pages, 8 figures, 2 tables. Accepted to ApJ. Expected publication: 2013-07-01, V771 - 1
References in corpus (4)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- The morphology of HII regions during reionization
- On the Origin of Cores in Simulated Galaxy Clusters
- Toward Empirical Constraints on the Global Redshifted 21 cm Brightness Temperature During the Epoch of Reionization
Cited by in corpus (25)
- On the signature of the baryon-dark matter relative velocity in the two and three-point galaxy correlation functions
- Streaming velocities and the baryon-acoustic oscillation scale
- Globular Clusters and Dark Satellite Galaxies through the Stream Velocity
- Supersonic Relative Velocity between Dark Matter and Baryons: A Review
- Formation of the first star clusters and massive star binaries by fragmentation of filamentary primordial gas clouds
- Following The Cosmic Evolution Of Pristine Gas I: Implications For Milky Way Halo Stars
- Magnetic fields in the formation of the first stars.--II Results
- Gas rich and gas poor structures through the stream velocity effect
- The Supersonic Project: Shining Light on SIGOs - a New Formation Channel for Globular Clusters
- Baryon-CDM isocurvature galaxy bias with IllustrisTNG
- Thermal History Of Cbb Chondrules And Cooling Rate Distributions Of Ejecta Plumes
- How Density Environment Changes the Influence of the Dark Matter-Baryon Streaming Velocity on the Cosmological Structure Formation
- Comparing Simulations of AGN Feedback
- The Supersonic Project: rotational effects of supersonic motions on the first structures in the Universe
- Large-scale variation in reionization history caused by Baryon-dark matter streaming velocity
- First Structure Formation under the Influence of Gas-Dark Matter Streaming Velocity and Density: Impact of the Baryons-trace-dark matter Approximation
- First estimate of the local value of the baryonic streaming velocity
- The Supersonic Project: To cool or not to cool Supersonically Induced Gas Objects (SIGOs)?
- Dwarf galaxy formation with and without dark matter-baryon streaming velocities
- Constraining structure formation using EDGES
- The effect of Primordial Black Holes and streaming motions on structure formation
- The Supersonic Project: The eccentricity and rotational support of SIGOs and DM GHOSts
- Impact of dark matter-baryon relative velocity on the 21cm forest
- Formation of Compact Clusters from High Resolution Hybrid Cosmological Simulations
- The Supersonic Project: SIGOs, a Proposed Progenitor to Globular Clusters, and their Connections to Gravitational Wave Anisotropies